Tag: SPH Engineering

  • Launchpad: Delivery drones, scanners, lidar and more

    Launchpad: Delivery drones, scanners, lidar and more

    A roundup of recent products in the GNSS and inertial positioning industry from the January-February 2026 issue of GPS World magazine.

    Autonomous

    1. Delivery Drones 

    Volatus deploys medical supplies in Canada 

    IMAGE: TRIMBLE
    Image: Trimble

    Volatus Aerospace has integrated the Trimble PX-1 RTX solution into its commercial delivery drone service to achieve accurate and robust positioning and heading. The Trimble module provides Volatus’ clients with a turnkey solution for highly accurate aerial data acquisition and fully remote drone operations in real-world missions, including beyond visual line of sight (BVLOS). The PX-1 RTX uses Trimble’s CenterPoint RTX corrections along with compact, high-performance GNSS-inertial hardware to deliver real-time, centimeter-level positioning and highly precise inertial-derived true heading measurements. This technology reduces operational risks associated with poor sensor performance or magnetic interference by providing enhanced positioning redundancy.

    Volatus Aerospace, Trimble

    2. Defense Drone

    For border protection and long-range surveillance missions 

    IMAGE: COPTERPIX
    Image: CopterPIX

    The ERE95 Mini by CopterPIX operational platform is fully capable of GNSS-denied missions and integrates a long-range, anti-jamming communication system supporting distances of more than 20 km. It has an endurance of 2 hours and can carry up to 5 kg of payload for up to 1 hour. It also has integrated daylight and thermal imaging for advanced surveillance. With a fully foldable frame, the platform collapses into a backpack-sized kit, making it suitable for rapid mobility and field operations. Its modular “puzzle” architecture allows quick adaptation of SDR modules, optical payloads, and navigation solutions, enabling mission-specific configurations. To support rapid field deployment, the ERE95 Mini features a mechanical and electrical quick-connect interface, allowing operators to switch payloads in seconds and maintain continuous operational readiness across all missions.

    CopterPIX

    3. Visual Navigation

    Integrated into long-endurance unmanned aircraft system 

    Puma LE gains GNSS-denied navigation with the VNS kit, ensuring precise, resilient flight and mission continuity in contested environments. (Image: AeroVironment)
    Image: AeroVironment

    AeroVironment has integrated its visual navigation system (VNS) kit with the Puma Long Endurance (LE) small unmanned aircraft system, delivering GNSS-denied navigation capability. The VNS kit uses advanced computer vision and onboard processing to deliver precise, GNSS-independent navigation. Using a suite of downward-facing sensors, cameras and onboard computing, the VNS kit performs visual inertial odometry to capture and analyze terrain imagery, estimating true aircraft position in real time. The system fuses continuous visual data from the cameras with motion inputs from onboard inertial sensors to calculate precise position, velocity and orientation — allowing the aircraft to know where it is and where it is going when GNSS is not available. It automatically transitions between GNSS-enabled and GNSS-denied modes with zero pilot input, ensuring uninterrupted mission continuity in contested environments.

    AeroVironment

    4. Counter-Drone Radar

    Low power, small footprint setup for close-airspace awareness 

    Photo: MatrixSpace
    Photo: MatrixSpace

    The Portable 360 Radar is a rugged, easily transportable radar kit that delivers reliable close-airspace awareness with panoramic coverage for rapid-response counter-drone operations, from safeguarding stadiums and large public gatherings to border security and battlespaces. The MatrixSpace platform unifies threat awareness across multiple networked Portable 360 Radar systems and other sensors, without compromising local operation. By combining AI edge processing with MatrixSpace AiCloud Enterprise software, central command centers get an enhanced common operating picture and deep airspace activity analytics to assure public safety.

    MatrixSpace

    Surveying and Mapping

    1. Laser RTK Receiver 

    Reliable in complex and GNSS-limited environments

    Photo: SatLab
    Photo: SatLab

    The SatLab SL8 Laser RTK GNSS receiver combines dual cameras, GNSS, an IMU and visible laser technology to make surveying faster and easier. With non-contact measurement, image-assisted targeting, CAD live-view stakeout, and a built-in LoRa radio. It ensures smooth, reliable work even in complex or GNSS-limited environments. The SL8 achieves 2 cm accuracy within 10 meters and enables efficient data collection across bridges, tunnels, riverbanks, and other sites where traditional GNSS methods are restricted. It features image-assisted targeting through SatSurv software, displaying laser points directly on real-time images for quick and precise aiming. Its automotive-grade IMU requires no manual calibration or initialization and enhances measurement accuracy by up to 40% in GNSS-challenged areas. A built-in multi-protocol LoRa transceiver provides stable transmission beyond 15 km and compatibility with multiple RTK brands. The integrated CAD and visual stakeout functions combine live imagery with CAD data, allowing users to visualize target points on site and increase layout efficiency by up to 50%.

    SatLab Geosolutions

    2. Utility Mapping 

    Partnership aims to provide precise maps

    Image: Getty Images / iStock / SummerParadive
    Image: Getty Images / iStock / SummerParadive

    A complete precision mapping solution for the utility and critical infrastructure industries worldwide is the goal of a partnership between ProStar Holdings and Tersus GNSS. The partnership will integrate Tersus’s survey-grade GNSS receivers with ProStar’s PointMan Underground Utility Mapping Software, providing an affordable, field-ready solution. The partnership will use ProStar’s LinQD open API integration platform, which is designed to enable seamless interoperability between emerging technologies and legacy systems, creating a robust global ecosystem for geospatial intelligence, uniting equipment manufacturers and service providers under the initiative.

    ProStar Holdings, Tersus GNSS

    3. Handheld Scanner 

    Designed for mobile mapping and reality capture

    The MVP S1 mobile mapper features an Al-driven RTK-SLAM algorithm that fuses lidar, vision and GNSS data. (Image: Tersus GNSS)
    (Image: Tersus GNSS)

    The MVP S1 RTK-SLAM handheld 3D laser scanner uses GNSS through an AI-driven RTK-SLAM workflow, as well as lidar data with imagery from dual 48-megapixel panoramic cameras. The combination provides survey-grade results in both GNSS-denied and open environments. The system achieves centimeter-level accuracy outdoors and maintains performance indoors or underground through SLAM processing. TimeSync 3.0 synchronizes the hardware, aligning sensor data at the microsecond level and supporting consistent datasets and reliable post-processing. A mobile application provides users with real-time feedback, including previews of colorized point clouds while scanning, as well as basic scan reports on site. This feature helps operators verify data completeness and quality before leaving the field, reducing the need for repeat visits. The MVP S1 supports 3D gaussian splatting (3DGS), enabling creation of textured, photorealistic 3D models. This capability is useful for building information modeling, construction progress monitoring, underground surveys, forestry analysis and industrial site documentation.

    Tersus GNSS

    4. GPR Systems for UAVs 

    Enable extended subsurface mapping

    The MALÅ GeoDrone 600 radar package. (Photo: SPH Engineering)
    (Photo: SPH Engineering)

    The MALÅ GeoDrone 600 and Zond Aero 600 NG are two new high-resolution ground-penetrating radar (GPR) systems for UAVs. They significantly enhance high-resolution subsurface investigations with drones, supporting applications in engineering surveys, utility mapping, archaeology, environmental studies and geophysical research. They enable surveyors to capture consistent, high-quality subsurface data in areas difficult, slow or unsafe to access with traditional ground instruments. Operating at 600 MHz, the antennas offer a balance between penetration depth and fine near-surface resolution. Typical penetration from the drone is up to 2 meters, depending on surface conditions, while SPH Engineering’s True Terrain Following ensures stable antenna height to maintain data quality and repeatability.

    SPH Engineering

    5. Visual RTK System

    For high-precision surveying, photo surveys and 3D modeling

    Image: Aurora Navigation
    Image: Aurora Navigation

    The Astra1 Mobile Visual RTK is a professional-grade GNSS receiver engineered to redefine high-precision mobile data acquisition. It is built to meet the demand for highly portable, reliable, high-precision tools that simplify complex field operations. At 60 grams, the Astra1 is an ultra-compact solution designed to deliver reliable, centimeter-level positioning and advanced 3D mapping capabilities through seamless integration with a smartphone and the proprietary Anypos App. Accuracy is RTK 8mm+1PPM horizontally, 15mm+1PPM vertically, photo survey <4 cm (2-15 m distance). The Astra1 allows users to capture photos with precise RTK coordinates, enabling the creation of accurate 3D models for detailed construction verification and digital twinning applications. 

    Aurora Navigation

    Transportation

    1. 5G Cellular Module

    Automotive-grade module integrates dual-band GNSS

    The AR588MA is a 5G-advanced (5G-A) automotive-grade cellular module that integrates dual-band GNSS supporting both L1 and L5 bands with up to 30 Hz output. Based on MediaTek’s latest-generation MT2739 platform, the AR588MA supports 5G-A communication technology and complies with the 3GPP R18 standard protocol. It features both NB-NTN and NR-NTN satellite communication capabilities and supports dual-SIM dual-active (DSDA) technology, offering improved stability and reliability on cellular connections. It also includes intelligent driving scenario recognition. Designed in compliance with the AEC-Q104 Grade 2 automotive standard, it delivers fast, stable connectivity and reliable security for in-vehicle communication and benefits on-roof applications, such as smart antennas for automotive, with higher-temperature support.

    Quectel Wireless Solutions

    2. Heave Accuracy

    IMU upgrade accounts for maritime wave motion

    A firmware upgrade to the Xsens Sirius and Xsens Avior IMUs delivers centimeter-level vertical displacement measurements for marine stabilization and control systems. The new Heave feature enables real-time stabilization and wave compensation in a wide range of marine applications. Marine engineers can access comprehensive motion data — roll, pitch, yaw and heave — from a single compact sensor, eliminating the need for external processing or oversized tactical-grade systems while maintaining the precision required for offshore platforms, vessels, docking systems, marine robots, buoys and surveying equipment.

    Xsens

    3. Lidar with Camera

    Compact module reduces OEM integration complexity

    Image: Innoviz
    Image: Innoviz

    The InnovizThree is fully colored long-range lidar with camera that creates a compact sensor-fusion module designed to reduce OEM integration complexity. The solution combines lidar and RGB sensing in a single compact perception module, purpose-built for behind-the-windshield installations, drones, micro-robotics and humanoids. The consolidation of an RGB camera inside InnovizThree reinforces Innoviz’s commitment to scalable, OEM-friendly sensor-fusion perception solutions designed for series production and long-term deployment, with the potential to enable faster deployment and cost savings. The RGB sensing capabilities are factory-aligned with the lidar, enabling precise and consistent visual-to-lidar geometry across production units. This alignment, combined with hardware-synchronized capture, will enable reliable multi-modal sensor-fusion data correlation while reducing calibration effort during vehicle integration.

    Innoviz Technologies

    4. AGX Platform

    High-integrity GNSS integration for autonomous driving

    Image: Getty Images / iStock / FlashMovie
    Image: Getty Images / iStock / FlashMovie

    Swift Navigation is collaborating with Nvidia to enable a scalable, cost-effective approach to autonomous driving by integrating the Nvidia Drive AGX platform with Swift’s globally referenced, centimeter-accurate GNSS positioning. Swift Navigation offloads absolute localization to the GNSS sensor stack using its Swift Automotive Suite. The suite is a complete, modular software solution for safe, high-integrity precise vehicle localization that combines the centimeter-level Skylark Precise Positioning Service with the Starling positioning engine, software that fuses raw GNSS data and corrections with IMU and wheel odometry to deliver high-integrity, centimeter-accurate positioning (PVT). By using Swift’s high-precision stack for lane-level positioning, the vehicle’s optical sensors focus on obstacle detection and safety, lowering system cost and complexity.

    Swift Navigation

    5. 5G GNSS Antennas

    Suitable for fleet and rail applications

    Image: Sinclair Technologies
    Image: Sinclair Technologies

    Sinclair’s new SM 5G Family Tier features the SM714 and SM2601 series antennas. The multi-band, multi-port antennas are engineered to deliver superior connectivity, reliability and versatility for GNSS and other mission-critical wireless transportation applications. The SM714 is a 4-in-1 low-profile customizable transit antenna that combines 5G/LTE, Wi-Fi and tri-band GNSS coverage in a single compact form. Supporting 617–5925 MHz, it enables seamless operation across all major 5G and LTE bands. It is suitable for vehicles, fleet systems and connected mobility applications requiring a discreet, high-performance solution. The SM2601D is a 5-in-1 low-profile customizable antenna that features five independent ports: one for PTC (219–223 MHz), one for Wi-Fi (2400–6000 MHz), one for GNSS, and two full-band cellular ports (694–2700 MHz) that support diversity and MIMO operation for multi-radio systems. This dual-cell configuration offers greater throughput, flexibility, and redundancy in complex communication environments.

    Sinclair Technologies

    6. Lidar Platform

    High-precision depth sensing and real-time
    velocity measurement

    Image: Voyant Technology
    Image: Voyant Photonics

    New versions of the Carbon lidar platform add 32-line and 64-line variants for compact, cost-sensitive and compute-limited systems. The new models complement existing 128-line configurations and are optimized for industrial autonomy, robotics, drones and smart infrastructure applications. They offer lower data rates and simplified integration while maintaining core FMCW advantages including velocity measurement, interference immunity and high dynamic range. With line resolutions spanning 32, 64 and 128, original equipment manufacturers and system integrators can tailor performance, bandwidth and compute load to specific use cases, from robotics and automated guided vehicles to drones and embedded edge platforms. The Carbon family’s silicon-photonics architecture integrates beam steering and coherent detection on a single photonic chip. The new variants include high-precision depth sensing and real-time velocity measurement, exceptional ambient light immunity and compact design for industrial and mobile environments.

    Voyant Photonics

    7. Base Station

    For automotive track and varied environment testing

    Image: VBox
    Image: VBOX

    The NTRIP Base Station from VBOX Automotive combines a multi-constellation, multi-frequency GNSS engine with a built-in networked transport of RTCM via internet protocol (NTRIP) server. The equipment transmits real-time kinematic corrections over radio and cellular or Wi-Fi networks, supporting accurate real-time positioning across wider areas in varied environments compared to traditional radio-only systems. The base station launches in three models, with specifications designed to fit users’ needs. All systems combine quad-constellation, dual-frequency GNSS technology with built-in cellular and Wi-Fi connectivity.  Compatible with VBOX 4, VBOX 3iS and external GNSS rovers, the new NTRIP Base Station supports both MSM4 and MSM7 RTCM formats, has up to 24 hours of battery life and is rated to IP67 to handle the demands of long outdoor test sessions. Models include Internal GNSS antenna and 2.4 GHz radio (quick to deploy for short-range applications, for temporary or mobile testing); Internal GNSS antenna, no radio (compact and simple, suitable for NTRIP or semi-permanent installations with external high-power radio masts); and External GNSS antenna, no radio (optimized for permanent installations with tripod-mounted antennas for maximum satellite visibility, supporting NTRIP or external radio).

    VBOX Automotive

  • SPH Engineering’s new high-resolution GPR antennas for UAVs extend subsurface mapping

    SPH Engineering’s new high-resolution GPR antennas for UAVs extend subsurface mapping

    SPH Engineering is offering two new ground-penetrating radar systems optimized for UAV integration: MALÅ GeoDrone 600 and Zond Aero 600 NG.

    Both 600 MHz antennas significantly enhance high-resolution subsurface investigations with drones, supporting applications in engineering surveys, utility mapping, archaeology, environmental studies and geophysical research. They enable surveyors to capture consistent, high-quality subsurface data in areas difficult, slow, or unsafe to access with traditional ground instruments.

    Operating at 600 MHz, the antennas offer a balance between penetration depth and fine near-surface resolution. Typical penetration from the drone is up to 2 meters, depending on the surface conditions, while SPH Engineering’s True Terrain Following ensures stable antenna height to maintain data quality and repeatability.

    Compared to ground-based carts or vehicle systems, the UAV-borne configuration enables operators to:

    • Survey rocky, uneven, vegetated, or steep terrain
    • Achieve consistent grid spacing and uniform antenna coupling
    • Cover large areas significantly faster than manual GPR methods
    • Improve safety by reducing personnel exposure in risky field conditions

    The MALÅ GeoDrone 600 combines the reliability of MALÅ instrumentation with SPH Engineering’s fully integrated drone workflow. Designed for precision engineering, utility detection, and geophysical mapping, the antenna produces clear, high-quality radargrams suitable for detailed structural assessment and shallow subsurface characterization.

    Key Specifications

    • Central frequency: 600 MHz
    • Operating Bandwidth: 250-900 MHz
    • Typical penetration: up to 2 m (soil-dependent)
    • Sampling: MALÅ HDR technology
    • Antenna design: Shielded
    • Weight: 2.7 kg
    The Zond Aero 600 NG antenna package. (Photo: SPH Engineering)
    The Zond Aero 600 NG antenna package. (Photo: SPH Engineering)

    The Zond Aero 600 NG is a next-generation shielded antenna designed specifically for airborne GPR operations. It offers a strong signal-to-noise ratio, improved ground coupling at low altitudes, and robust performance over natural terrain, making it particularly suitable for geophysical research, archaeology and environmental geoscience.

    Key Specifications

    • Central frequency: 600 MHz
    • Operating Bandwidth: 300-950 MHz (-12 dB)
    • Typical penetration: up to 2 m (soil-dependent)
    • Sampling: Real-Time Sampling (RTS) with high hardware stacking
    • Antenna type: Shielded
    • Weight: 1.7 kg

    Both antennas are fully compatible with SPH Engineering’s UgCS flight planning software and the SkyHub drone onboard computer, enabling:

    • Automated terrain-following flights over complex topography
    • Precise altitude control for optimal GPR signal geometry
    • Synchronized GNSS + radar trace logging (for Zond Aero 600, MALÅ GeoDrone 600 has built-in data recorder).
  • SPH Engineering launches multibeam echosounder payload for UAVs

    SPH Engineering launches multibeam echosounder payload for UAVs

    SPH Engineering has released a multibeam echosounder system for UAVs that uses the Cerulean Surveyor 240-16, a compact bathymetric sensor designed for shallow-water mapping.

    The system expands drone-based hydrographic surveying capabilities by providing high-resolution bathymetric data collection over shallow waters. The Surveyor 240-16 operates at 240 kHz with a measurement range of 0.5 m to 50 m, targeting inland waterways, reservoirs, ports and environmental monitoring locations.

    The multibeam system generates an 80° cross-track swath with a 16-element receive array and 1° angular resolution, allowing operators to map wider bottom coverage compared to traditional single-beam payloads.

    The payload integrates with SPH Engineering’s UgCS flight planning software and SkyHub onboard computer for automated missions. Weighing 2.4 kilograms with all components and consuming 15 watts of power, the system works with UAVs including DJI M300, M350 and M400 models, as well as Inspired Flight IF800 and IF1200 aircraft.

    SPH Engineering conducted field validation at Titutga Lake in Latvia in August 2025. Survey flights operated at an average speed of 1.2 m per second, balancing data collection density with UAV battery endurance.

    Testing compared the multibeam system’s performance against single-beam payloads, which engineers noted remain useful for quality control verification of multibeam datasets. The combined approach demonstrated capabilities for high-resolution mapping in areas previously difficult to access with boat-based systems.

    Software compatibility includes full support in BeamworX, with Hydromagic integration planned for future releases.

    “The payload based on Cerulean Surveyor 240-16 represents a milestone in drone-based bathymetry,” said Alexey Dobrovolskiy, CEO of SPH Engineering. “By combining multibeam technology with UAV platforms, we are enabling hydrographers to collect dense bathymetric datasets at a fraction of the time and cost of conventional systems. This integration opens new opportunities for surveying reservoirs, lakes, and coastal areas that were previously inaccessible or unsafe.”

  • SPH Engineering enhances UAV software to boost field operation efficiency

    SPH Engineering enhances UAV software to boost field operation efficiency

    SPH Engineering has released an updated version of its UgCS UAV mission planning software, introducing significant improvements in elevation data accuracy and user control over flight parameters. The latest version allows users to explicitly set flight altitude for photogrammetry and corridor mapping missions, moving beyond the previous requirement to use ground sample distance as the primary input. This change seeks to offer UAV operators greater clarity and precision, particularly for operations that demand specific altitudes and a clear understanding of expected image resolution.

    For users in the United States, UgCS now integrates USGS 1/3 Arc Second elevation data by default. This enhancement increases the resolution of elevation data from one data point every 30 m to one every 10 m, designed to improve the accuracy of terrain-following missions and making flight operations safer and more efficient in complex or mountainous areas.

    The update also brings several interface enhancements designed to streamline the mission planning process. The ‘Export Route’ button is now more prominent, making it easier for users to access, especially those using the UgCS Open version. When creating a new route, the software displays the five most popular drone models first, simplifying selection for common platforms. For drones equipped with multi-lens cameras, UgCS now defaults to the wide camera during photogrammetry route planning, reducing the need for manual adjustments.

    Additionally, the Visual Inspection route category has been improved with the introduction of a Circle tool, which simplifies the planning of circular orbits around specific points of interest. No-Fly Zones are now disabled by default in new installations, allowing for faster mission setup. The new version also expands hardware compatibility by adding support for the DJI M3D and M3TD UAVs.

  • SPH Engineering unveils UAV flight-planning software

    SPH Engineering unveils UAV flight-planning software

    SPH Engineering has introduced UgCS Open, a free version of its widely used UAV flight-planning software. This new offering retains the core features of the paid UgCS Expert version, including 3D flight planning, terrain-aware automation and mission control.

    The launch of UgCS Open is aimed at making advanced UAV flight planning more accessible while maintaining SPH Engineering’s focus on professional applications. This version is particularly beneficial for those starting with tasks such as lidar flights, UAV photogrammetry, automated inspections and terrain-aware mission planning.

    UgCS supports a wide range of popular UAV platforms, including DJI models such as the M350, M300, Mavic 3 Enterprise and Matrice 4 Series. Unlike cloud-based solutions, UgCS operates locally on PC or Mac systems, offering full offline capabilities and a fast, 3D flight-planning environment. This makes it suitable for complex missions such as lidar surveys, photogrammetry and corridor mapping.

    By introducing UgCS Open, SPH Engineering aims to lower the entry barrier for UAV operators while continuing to cater to the needs of experienced professionals requiring advanced mission planning tools.

  • Launchpad: New surveying and mapping products,  MEMS sensors and more

    Launchpad: New surveying and mapping products, MEMS sensors and more

    A roundup of recent products in the GNSS and inertial positioning industry from the December 2024 issue of GPS World magazine.


    Mapping

    Photo: SPH Engineering
    Photo: SPH Engineering

    GPR System
    For terrestrial and airborne applications 

    The Zond Aero 500 NG is a versatile ground penetrating radar (GPR) system designed for both terrestrial and drone-mounted surveys, suitable for applications such as utility scanning, sinkhole detection, glaciology and geological studies. It operates in dual mode, allowing for ground-based and airborne surveys, enhancing data collection flexibility. Key specifications include a center frequency of 500 MHz, an operating bandwidth of 200 MHz – 900 MHz, a sampling rate of 25,600 samples per second and a scan rate of 50 scans per second, with depth penetration up to 4 meters in average soil conditions. The system features advanced electronics for real-time data collection, which can significantly improve the signal-to-noise ratio. It is compatible with DJI Matrice 300/350 UAVs for airborne applications.

    SPH Engineering, sphengineering.com

    Photo: DeltaQuad
    Photo: DeltaQuad

    Streamlined Lidar Mapping
    YellowScan’s Surveyor Ultra integrated with DeltaQuad Evo

    Integrating YellowScan’s Surveyor Ultra with the DeltaQuad Evo platform allows users to collect high-precision, high-density data across 1,200 hectares in a single flight while simultaneously capturing lidar and RGB data.

    DeltaQuad Evo’s long-range flight capabilities and efficient vertical take-off and landing (VTOL) design, paired with the Surveyor Ultra’s lidar technology, allow users to streamline their workflows to reduce time spent in the air and on post-processing tasks, making it particularly beneficial for large infrastructure projects, forestry analysis and environmental monitoring. The system can be used for surveying, construction, forestry and environmental research.

    DeltaQuad, deltaquad.com

    Photo: RIEGL
    Photo: RIEGL

    Airborne Mapping System
    With a ‘cross-fire’ scan pattern

    The VQ-1560 III-S is a dual-channel laser scanning system designed for airborne mapping applications. Its “cross-fire” scan pattern allows for simultaneous forward and backward viewing at the edges of the swath, along with a nadir view in the center. This configuration optimizes point distribution for effective target sampling. With pulse repetition rates reaching up to 4.4 MHz, the VQ-1560 III-S can operate at altitudes of up to 1,600 m above ground level (AGL). At a lower pulse repetition rate of 560 kHz, it can function at altitudes as high as 3,900 m AGL.

    The system features inertial measurement unit (IMU) and GNSS integration, with the option to include one or two high-resolution RGB/NIR cameras. It is ideal for professionals in fields such as urban planning, forestry and environmental monitoring.

    RIEGL, riegl.com

    Photo: Teledyne Optech
    Photo: Teledyne Optech

    Coastal Mapping Solution
    Features a lidar sensor

    This bathymetric lidar system is designed for coastal and inland water mapping. It combines high-resolution topographic and bathymetric capabilities, allowing for seamless data collection across land and sea. It can be used for coastal zone management, environmental monitoring, infrastructure planning and more.

    Fathom delivers data quickly by leveraging real-time quality control with Onboard and scalable processing with a CARIS workflow. It also includes a built-in topographic lidar and a multispectral camera for coastal surveys at a coverage of 50 km2/hour.

    Teledyne Optech, teledyneoptech.com

    Photo: Juniper Systems
    Photo: Juniper Systems

    Mounting Accessory
    Designed for mobile mapping 

    The Geode Grip is a mounting accessory featuring a specialized bracket. It allows users to securely attach smartphones directly to Juniper’s Geode GNSS receivers, offering an integrated and streamlined data collection solution.

    The Geode Grip is a tool designed for professionals in surveying, mapping and geographic information systems (GIS) to enhance mobile data collection. It replaces the traditional survey pole with a handheld setup that aims to improve ergonomics. It is ideal for field projects that require precise location data and mobile data collection, such as environmental research, land surveying, agriculture and infrastructure engineering. 

    Juniper Systems, junipersys.com


    Mobile

    Photo: Quectel Wireless Solutions
    Photo: Quectel Wireless Solutions

    New Product Bundle  
    For high-accuracy GNSS applications  

    Quectel Wireless Solutions has unveiled a new product bundle designed to facilitate the development of high-accuracy GNSS applications. The bundle includes the LG290P GNSS module, which is a quad-band, multi-constellation device capable of receiving signals from various satellite systems, including GPS, GLONASS, Galileo, BDS, QZSS and NavIC. The LG290P is engineered for high precision and supports RTK positioning, allowing for centimeter-level accuracy even in challenging environments. It can be used in diverse applications, such as autonomous vehicles, precision agriculture and surveying.

    In addition to the LG290P module, the bundle includes options for either the YEGN103W8A geodetic antenna or the YEGD006U1A patch antenna. Both antennas are designed to operate within the same frequency bands as the GNSS module and are compliant with environmental regulations such as RoHS. This pre-integrated solution simplifies developers’ procurement and integration process by providing a one-stop solution that combines antennas with GNSS modules and RTK correction services.

    Quectel Wireless Solutions, quectel.com


    Surveying

    Photo: Inertial Labs
    Photo: Inertial Labs

    Lidar Camera Payload
    For surveying and mapping applications 

    The RESEPI Ultra LITE is a lightweight payload combining lidar and camera technology for advanced surveying and mapping applications. The system integrates the XT-32 lidar scanner to offer users advanced data accuracy and point density across various operational modes.

    It has a compact design with a 5MP colorization camera, making it ideal for small unmanned aerial systems (SUAS) with strict volume constraints. It can be used for aerial and ground-based applications, including utility mapping, construction volumetrics, precision agriculture, forestry, site surveying and mining. Designed for seamless integration, the system is compatible with a wide range of platforms such as Freefly, WISPR, DJI, Sony and mobile setups. Inertial Labs’ proprietary SnapFit adapters ensure quick and secure mounting to enhance the system’s adaptability.

    Inertial Labs, inertiallabs.com

    Photo: Leica Geosystems
    Photo: Leica Geosystems

    RTK Rover
    With tilt compensation 

    The Leica GS05 is a compact and lightweight GNSS smart antenna designed for surveying tasks, featuring calibration-free tilt compensation. This robust device allows for accurate measurements even when the survey pole is tilted up to 30°, enhancing data collection in challenging environments. Its integration with Leica Geosystems’ portfolio, including Leica Captivate software and total stations, seeks to maximize efficiency. The GS05 can function as both a base and an RTK rover, supporting single base stations and RTK networks such as Leica SmartNet.

    Leica Geosystems, leica-geosystems.com

    Photo: Teledyne Marine
    Photo: Teledyne Marine

    GNSS/INS
    For marine surveying applications 

    Intrepid is a GNSS/INS system integrated with the SeaBat T20-ASV processor and includes a compact IMU and two GNSS antennas, ensuring reliable and precise positioning.

    It can automatically stream data to third-party software. This eliminates the need for manual sensor interfacing and reduces downtime. The Intrepid GNSS/INS benefits users in marine surveying applications by providing the precise navigation necessary for operational efficiency. Its intuitive design allows for simple configuration.

    Teledyne Marine, teledynemarine.com


    OEM

    Photo: Inertial Labs
    Photo: Inertial Labs

    Miniature MEMS Sensor-Based IMU
    Can withstand high shock and vibrations

    The KERNEL-201 features three-axis MEMS accelerometers and gyroscopes that offer ultra-low noise, high bandwidth and minimal latency. These characteristics make it ideal for applications such as pointing, stabilization and navigation in systems where performance and size are critical. Its volume of 0.38 cubic inches offers a high dynamic range.

    Fully calibrated and temperature-compensated, the unit offers consistent, precise measurements even in challenging environments. It features an in-run bias stability of up to 0.7 deg/hr for gyroscopes and 0.005 mg for accelerometers, along with a low angular random walk (ARW) of 0.065°/√hr and velocity random walk (VRW) of 0.015 m/sec/√hr.

    The unit is designed to withstand high shock and vibration while maintaining peak performance, making it suitable for a wide range of challenging applications. The KERNEL-201 can be integrated into various high-level systems, such as motion reference units (MRUs), GPS-aided inertial navigation systems (INS) and attitude and heading reference systems (AHRS). It offers continuous built-in testing (BIT), customizable communication protocols and flexible power options.

    Inertial Labs, inertiallabs.com

    Photo: Calian GNSS
    Photo: Calian GNSS

    Smart Choke Antenna
    Offers comprehensive GNSS signal reception

    The VCS6000XF full band smart choke antenna is engineered for CORS applications. It combines Tallysman Verachoke antenna elements with Septentrio’s Mosaic X5 full-band receiver to offer an integrated solution for OEM CORS systems.

    The VCS6000XF offers comprehensive GNSS signal reception, including GPS/QZSS L1/L2/L5, GLONASS G1/G2/G3, Galileo E1/E5a/E5b/E6/E5 AltBoc, BeiDou B1/B2/B2a/B3, NavIC L5, SBAS and L-Band correction services.

    The antenna features a 0.5 mm phase center variation and utilizes Calian’s eXtended filtering for near-band signal interference mitigation. The integrated Septentrio Mosaic X5 receiver provides capabilities such as anti-jamming, anti-spoofing, scintillation mitigation and receiver integrity by combining the antenna and receiver in the choke ring antenna.

    Calian GNSS, calian.com

  • Lidar helps unlock secrets in Amelia Earhart mystery

    Lidar helps unlock secrets in Amelia Earhart mystery

    Elevation map of New Britain, Papua New Guinea. (Photo: topographic-map. com)
    Elevation map of New Britain, Papua New Guinea. (Photo: topographic-map.com)

    The Discovery Channel’s recently released “Finding Amelia” documentary explores the latest expedition aimed to uncover Amelia Earhart’s mysterious fate, featuring the participation of SPH Engineering. The film investigates the theory that Earhart and her navigator, Fred Noonan, may have crashed in Papua New Guinea during their 1937 attempt to circumnavigate the globe.

    SPH Engineering joined the search nearly two years before the expedition, leveraging its experience from successful UAV operations in Greenland. The team’s mission focused on the dense jungles of New Britain, an island in Papua New Guinea, where they employed UAV technology to search for Earhart’s aircraft.

    Planned routes for lidar scans in SPH Engineering’s UgCS flight planning software. (Photo: SPH Engineering)
    Planned routes for lidar scans in SPH Engineering’s UgCS flight planning software. (Photo: SPH Engineering)

    Technology and challenges

    The documentary follows the testing for the mission, which began in February 2021. The team conducted experimental detection of aircraft engines using UAV-mounted magnetometers. These experiments led the team to request satellite imagery and elevation maps of where the expedition was planned. This map was essential for studying the terrain and preparing for the mission. According to the analysis, the average expected vegetation height of 10 to 15 m allowed for the detection of aircraft engines using a magnetometer.

    The SPH Engineering team arrived on-site with a suite of UAVs equipped with magnetometer, lidar and photogrammetry tools.

    During the search, a small UAV equipped with a camera was first used to create precise maps of the search area. These maps were essential for planning subsequent flights. The team then conducted lidar scanning from a safe altitude to build digital surface models (DSM) and digital terrain models (DTM) to plan magnetic surveys.

    The next step was to conduct the survey using a UAV-based magnetometer. The team found that while the average height of trees allowed for the detection of aircraft engines using a magnetometer, the presence of extremely tall trees made magnetic flight planning difficult.

    Processed lidar data showing potential Japanese troop trails. (Photo: SPH Engineering)
    Processed lidar data showing potential Japanese troop trails. (Photo: SPH Engineering)

    Janis Kuze, director of special projects for SPH Engineering explains the challenge. “In contrast to what we saw in satellite data available before the expedition, the average height of the trees was a bit greater, but the main problem was real ‘skyscrapers’ towering up to 60 m. These extremely high trees were totally missed in satellite elevation data. Despite the challenges, we had relative success detecting magnetic anomalies over the B-17 bomber crash site.”

    Processed LiDAR data showing the object resembling the shape and size of Amelia Earhart’s aircraft. (Photo: SPH Engineering)
    Processed lidar data showing the object resembling the shape and size of Amelia Earhart’s aircraft. (Photo: SPH Engineering)

    Operation and results

    Due to the high trees and the limited amount of magnetic ferrous metal in airplane engines, reliable detection using magnetometers proved difficult. The team then decided to switch back to lidar. Dozens of low-altitude lidar flights were conducted, using previous scans for flight planning, to build a detailed map of the ground surface beneath the trees.

    The results revealed what is believed to be hidden Japanese troop trails and something resembling the shape and size of Amelia Earhart’s aircraft, the Lockheed Electra.

  • SPH Engineering, Radar Systems advance aerial surveying

    SPH Engineering, Radar Systems advance aerial surveying

    SPH Engineering and Radar Systems, Inc. have developed the Zond Aero 500 NG, a versatile ground penetrating radar (GPR) system designed for both terrestrial and drone-mounted surveys. This dual-purpose GPR is suitable for various applications, including utility scanning, sinkhole detection, glaciology and geological studies.

    The Zond Aero 500 NG features dual-mode operation, allowing users to conduct both ground-based and airborne surveys. This flexibility enhances the data collection methods available to operators. The system includes a center frequency of 500 MHz, an operating bandwidth of 200-900 MHz (-12 dB), a sampling rate of 25,600 samples per second and a scan rate of 50 scans per second. It can achieve depth penetration of up to 4 m in average soil conditions, making it effective for a range of subsurface investigations.

    It is designed to deliver high-quality data through advanced electronics and real-time to enhance the signal-to-noise ratio significantly. This improvement enables the detection of finer details and deeper anomalies within the surveyed area. Additionally, the system is compatible with DJI Matrice 300/350 UAVs for airborne applications.

    The system’s data is recorded in real time as radiolocation profiles (radargrams), which are stored for further processing and interpretation. The data is saved in the standard geophysical SEGY format (.sgy) with geotagging for each trace to offer accurate analysis and reporting.

  • TOPODRONE studies Israel floating solar farm

    TOPODRONE studies Israel floating solar farm

    (Photo: TOTODRONE)
    Image: TOPODRONE

    On Jan. 12, TOPODRONE used its synchronized lidar, airborne photogrammetry and bathymetric surveying methods to study a floating solar farm in Israel. This was completed upon request from the UAV service provider ERELIS, to help conduct a pilot project of reservoir surveying with a UAV for ETZ HADEKEL in northern Israel.

    As the surface of the reservoir in Northern Israel is covered by solar panels, it is difficult to use standard methods of surveying from a boat. The goal of this study was to create 3D models, which can be used for high-precision assessments of sediment volumes, general monitoring of reservoir banks and visual monitoring.

    (Photo: TOTODRONE)
    Image:  TOPODRONE

    During this project, ERELIS performed two-stage UAV surveying to create the 3D model of the reservoir. In the first stage, aerial photogrammetry and lidar surveys were performed using a DJI M300 UAV. The UAV was equipped with the P61 TOPODRONE camera and a lidar high-resolution system to determine the location of obstacles. The lidar scanning provided accurate detection of cables in the water.

    The second stage included an underwater bathymetric survey using the TOPODRONE AQUAMAPPER mounted to the DJI M300 UAV. The flight mission was planned and executed with the UgCS software by SPH Engineering.

    All data collected from the study was processed by TOPODRONE Post Processing software. This generated a georeferenced orthophoto map, a 3D model of the relief and objects, a 3D model of the bottom of the reservoir and a model of contour lines and isobaths.

  • Bathymetric surveys dip into Dead Sea

    Bathymetric surveys dip into Dead Sea

    Photo: SPH Engineering
    A drone equipped with an echo sounder surveys the Dead Sea. (Photo: SPH Engineering)

    Israeli drone service provider ERELIS has conducted a number of pilot projects using a drone equipped with a single-beam echo sounder in the Mediterranean Sea and the Dead Sea. The data was validated by authorized local surveyors and reports from previous surveys of the same areas by the Michmoret Campus, Faculty of Marine Science.

    The reference bathymetric data was collected using a manned boat and multi-beam and single-beam echo sounders and demonstrated a good match between the results of new drone-based and traditional methods.

    The bathymetric system consisted of a standard commercial DJI drone (UgCS SkyHub onboard computer and terrain-following system with radar altimeter) and Echologger ECT400 single-beam echo sounder provided by SPH Engineering, Latvia. For data processing, the Eye4Software Hydromagic software package was employed.

    “I was surprised by the maneuverability of the system and how easy it is to conduct bathymetric surveys using a UAV equipped with an echo sounder,” said Roman Kirsanov, CEO of ERELIS. “Some of our survey areas were 400 to 500 meters away from take-off and landing positions, and that means that remote sensing comes to the world of hydrography and becomes available to any drone service companies.”

    Screenshot: SPH Engineering
    Screenshot: SPH Engineering

    “It was good to see that applicability of our system with a single-beam echo sounder validated in conditions outside of its initial focus on small-scale surveys of inland water bodies,” said Alexey Dobrovolskiy, CTO of SPH Engineering. “We can now recommend our system for small-scale surveys in coastal areas and virtually in any liquids. The density of water in the Dead Sea is 1.24 kg/l.”

    In May, SPH Engineering launched a UAV integrated with an echo sounder, as a new product for bathymetric surveys of inland and coastal waters. This data-collection method has since been used in Denmark and the UAE, and is suitable for mapping, measuring and inspections, as well as environmental monitoring.

  • UgCS updated for UAV-based lidar mapping

    UgCS updated for UAV-based lidar mapping

    Image: SPH Engineering
    Image: SPH Engineering

    SPH Engineering has released a lidar toolset update to UgCS — the company’s UAV mission planning and flight control software. The lidar toolset is designed to eliminate human error in remote sensing.

    Features include precise calibration, flight patterns for route planning, anti-shake turns, and constant line spacing and buffer.

    The UgCS lidar toolset allows users to optimize time and cost-effectiveness at all stages of data collection and processing. At the flight planning stage, time is saved on mission planning, with flight patterns and turns designed specifically for lidar surveys.

    At the flight stage, users can acquire high-quality laser data with preset inertial measurement unit (IMU) initialization patterns and anti-shake lidar turns. During post-flight data analysis, the high accuracy of the acquired data ensures the desired results with a single trip to the field

    “We have received various requests from lidar producers and end-users to improve the accuracy of laser data collected with a UAV,” said lexei Yankelevich, head of software development at SPH Engineering. “We have invested in UgCS R&D to focus mainly on automated IMU calibration commands, automatic calculation of required line spacing and overlap, and prevention of sensor shaking. Trial flights over SPH Engineering’s in-house test range have confirmed UgCS lidar toolset capacity to support main lidar market players.”

    Application areas include power line inspections, road inspections, construction, mining, archaeology and forestry.

  • UgCS software updated for drone-based lidar missions

    Image: SPH Engineering
    Image: SPH Engineering

    SPH Engineering has updated its UgCS software with a lidar toolset for UAVs. The toolset is designed to unlock the full potential of lidar sensors, making remote sensing more effective without human errors. Key features include precision calibration, flight patterns for route planning, anti-shake turns, and constant line spacing and buffer.

    The UgCS lidar toolset allows users to optimize time and cost-effectiveness at all stages of data collection and processing. Time is saved on mission planning with flight patterns and turns designed for lidar surveys. During flight, users can acquire high-quality laser data with preset inertial measurement unit (IMU) initialization patterns and anti-shake lidar turns. During post-flight data analysis, the high accuracy of acquired data ensures users can get the desired results with one trip to the field and quality data analysis.

    “We have received various requests from lidar producers and end-users to improve the accuracy of laser data collected with a UAV,” said Alexei Yankelevich, head of software development at SPH Engineering. “We have invested in UgCS R&D to focus mainly on automated IMU calibration commands, automatic calculation of required line spacing and overlap, and prevention of sensor shaking. Trial flights over SPH Engineering’s in-house test range have confirmed UgCS lidar toolset capacity to support main lidar market players.”

    Common application areas include power-line inspections, road inspections, construction, mining, archaeology and forestry.